ViewVC Help
View File | Revision Log | Show Annotations | Download File
/cvs/gvpe/src/vpn_dns.C
Revision: 1.30
Committed: Mon Mar 14 17:40:01 2005 UTC (19 years, 2 months ago) by pcg
Content type: text/plain
Branch: MAIN
Changes since 1.29: +8 -7 lines
Log Message:
*** empty log message ***

File Contents

# User Rev Content
1 pcg 1.1 /*
2     vpn_dns.C -- handle the dns tunnel part of the protocol.
3 pcg 1.7 Copyright (C) 2003-2005 Marc Lehmann <gvpe@schmorp.de>
4 pcg 1.1
5 pcg 1.7 This file is part of GVPE.
6    
7     GVPE is free software; you can redistribute it and/or modify
8 pcg 1.1 it under the terms of the GNU General Public License as published by
9     the Free Software Foundation; either version 2 of the License, or
10     (at your option) any later version.
11    
12     This program is distributed in the hope that it will be useful,
13     but WITHOUT ANY WARRANTY; without even the implied warranty of
14     MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15     GNU General Public License for more details.
16    
17     You should have received a copy of the GNU General Public License
18 pcg 1.7 along with gvpe; if not, write to the Free Software
19 pcg 1.1 Foundation, Inc. 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
20     */
21    
22     #include "config.h"
23    
24     #if ENABLE_DNS
25    
26     // dns processing is EXTREMELY ugly. For obvious(?) reasons.
27     // it's a hack, use only in emergency situations please.
28    
29     #include <cstring>
30 pcg 1.20 #include <cassert>
31 pcg 1.1
32     #include <sys/types.h>
33     #include <sys/socket.h>
34     #include <sys/wait.h>
35     #include <sys/uio.h>
36     #include <errno.h>
37     #include <time.h>
38     #include <unistd.h>
39     #include <fcntl.h>
40    
41     #include <map>
42    
43 pcg 1.8 #include <gmp.h>
44    
45 pcg 1.1 #include "netcompat.h"
46    
47     #include "vpn.h"
48    
49 pcg 1.30 #define MAX_POLL_INTERVAL 5. // how often to poll minimally when the server has no data
50 pcg 1.10 #define ACTIVITY_INTERVAL 5.
51    
52 pcg 1.17 #define INITIAL_TIMEOUT 0.1 // retry timeouts
53     #define INITIAL_SYN_TIMEOUT 10. // retry timeout for initial syn
54 pcg 1.10
55 pcg 1.30 #define MIN_SEND_INTERVAL 0.001 // wait at least this time between sending requests
56 pcg 1.27 #define MAX_SEND_INTERVAL 2. // optimistic?
57 pcg 1.1
58 pcg 1.25 #define LATENCY_FACTOR 0.5 // RTT * LATENCY_FACTOR == sending rate
59 pcg 1.30 #define MAX_OUTSTANDING 2 // max. outstanding requests
60 pcg 1.17 #define MAX_WINDOW 1000 // max. for MAX_OUTSTANDING, and backlog
61 pcg 1.15 #define MAX_BACKLOG (100*1024) // size of gvpe protocol backlog (bytes), must be > MAXSIZE
62 pcg 1.5
63 pcg 1.28 #define MAX_DOMAIN_SIZE 240 // 255 is legal limit, but bind doesn't compress well
64 pcg 1.5 // 240 leaves about 4 bytes of server reply data
65 pcg 1.15 // every two request bytes less give room for one reply byte
66 pcg 1.5
67 pcg 1.17 #define SEQNO_MASK 0x3fff
68 pcg 1.8 #define SEQNO_EQ(a,b) ( 0 == ( ((a) ^ (b)) & SEQNO_MASK) )
69 pcg 1.1
70 pcg 1.8 #define MAX_LBL_SIZE 63
71     #define MAX_PKT_SIZE 512
72 pcg 1.1
73 pcg 1.10 #define RR_TYPE_A 1
74     #define RR_TYPE_NULL 10
75     #define RR_TYPE_TXT 16
76 pcg 1.8 #define RR_TYPE_ANY 255
77 pcg 1.10
78     #define RR_CLASS_IN 1
79    
80     #define CMD_IP_1 207
81     #define CMD_IP_2 46
82     #define CMD_IP_3 236
83     #define CMD_IP_RST 29
84     #define CMD_IP_SYN 113
85     #define CMD_IP_REJ 32
86 pcg 1.1
87 pcg 1.8 // works for cmaps up to 255 (not 256!)
88     struct charmap
89     {
90     enum { INVALID = (u8)255 };
91 pcg 1.1
92 pcg 1.8 char encode [256]; // index => char
93     u8 decode [256]; // char => index
94     unsigned int size;
95 pcg 1.2
96 pcg 1.8 charmap (const char *cmap);
97     };
98    
99     charmap::charmap (const char *cmap)
100     {
101     char *enc = encode;
102     u8 *dec = decode;
103 pcg 1.2
104 pcg 1.8 memset (enc, (char) 0, 256);
105     memset (dec, (char)INVALID, 256);
106 pcg 1.1
107 pcg 1.8 for (size = 0; cmap [size]; size++)
108     {
109     enc [size] = cmap [size];
110     dec [(u8)enc [size]] = size;
111     }
112 pcg 1.1
113 pcg 1.8 assert (size < 256);
114     }
115 pcg 1.2
116 pcg 1.8 #define MAX_DEC_LEN 500
117     #define MAX_ENC_LEN (MAX_DEC_LEN * 2)
118     #define MAX_LIMBS ((MAX_DEC_LEN * 8 + GMP_NUMB_BITS - 1) / GMP_NUMB_BITS)
119 pcg 1.2
120 pcg 1.8 // ugly. minimum base is 16(!)
121     struct basecoder
122 pcg 1.2 {
123 pcg 1.8 charmap cmap;
124     unsigned int enc_len [MAX_DEC_LEN];
125     unsigned int dec_len [MAX_ENC_LEN];
126 pcg 1.2
127 pcg 1.8 unsigned int encode_len (unsigned int len);
128     unsigned int decode_len (unsigned int len);
129    
130     unsigned int encode (char *dst, u8 *src, unsigned int len);
131     unsigned int decode (u8 *dst, char *src, unsigned int len);
132    
133     basecoder (const char *cmap);
134     };
135    
136     basecoder::basecoder (const char *cmap)
137     : cmap (cmap)
138     {
139     for (unsigned int len = 0; len < MAX_DEC_LEN; ++len)
140     {
141     u8 src [MAX_DEC_LEN];
142     u8 dst [MAX_ENC_LEN];
143 pcg 1.2
144 pcg 1.8 memset (src, 255, len);
145 pcg 1.2
146 pcg 1.8 mp_limb_t m [MAX_LIMBS];
147     mp_size_t n;
148    
149     n = mpn_set_str (m, src, len, 256);
150     n = mpn_get_str (dst, this->cmap.size, m, n);
151    
152     for (int i = 0; !dst [i]; ++i)
153     n--;
154    
155     enc_len [len] = n;
156     dec_len [n] = len;
157     }
158     }
159    
160     unsigned int basecoder::encode_len (unsigned int len)
161     {
162     return enc_len [len];
163     }
164 pcg 1.2
165 pcg 1.8 unsigned int basecoder::decode_len (unsigned int len)
166 pcg 1.2 {
167 pcg 1.8 while (len && !dec_len [len])
168     --len;
169    
170     return dec_len [len];
171 pcg 1.2 }
172    
173 pcg 1.8 unsigned int basecoder::encode (char *dst, u8 *src, unsigned int len)
174 pcg 1.2 {
175 pcg 1.10 if (!len || len > MAX_DEC_LEN)
176 pcg 1.8 return 0;
177    
178     int elen = encode_len (len);
179    
180     mp_limb_t m [MAX_LIMBS];
181     mp_size_t n;
182    
183     u8 dst_ [MAX_ENC_LEN];
184    
185     n = mpn_set_str (m, src, len, 256);
186     n = mpn_get_str (dst_, cmap.size, m, n);
187    
188     int plen = elen; // for padding
189 pcg 1.2
190 pcg 1.8 while (n < plen)
191 pcg 1.2 {
192 pcg 1.8 *dst++ = cmap.encode [0];
193     plen--;
194 pcg 1.2 }
195    
196 pcg 1.8 for (unsigned int i = n - plen; i < n; ++i)
197     *dst++ = cmap.encode [dst_ [i]];
198 pcg 1.4
199 pcg 1.8 return elen;
200 pcg 1.2 }
201    
202 pcg 1.8 unsigned int basecoder::decode (u8 *dst, char *src, unsigned int len)
203 pcg 1.2 {
204 pcg 1.10 if (!len || len > MAX_ENC_LEN)
205 pcg 1.8 return 0;
206    
207     u8 src_ [MAX_ENC_LEN];
208     unsigned int elen = 0;
209 pcg 1.2
210     while (len--)
211     {
212 pcg 1.8 u8 val = cmap.decode [(u8)*src++];
213 pcg 1.2
214 pcg 1.8 if (val != charmap::INVALID)
215     src_ [elen++] = val;
216     }
217    
218     int dlen = decode_len (elen);
219    
220     mp_limb_t m [MAX_LIMBS];
221     mp_size_t n;
222    
223     u8 dst_ [MAX_DEC_LEN];
224 pcg 1.2
225 pcg 1.8 n = mpn_set_str (m, src_, elen, cmap.size);
226     n = mpn_get_str (dst_, 256, m, n);
227 pcg 1.2
228 pcg 1.8 if (n < dlen)
229     {
230     memset (dst, 0, dlen - n);
231     memcpy (dst + dlen - n, dst_, n);
232 pcg 1.2 }
233 pcg 1.8 else
234     memcpy (dst, dst_ + n - dlen, dlen);
235 pcg 1.4
236 pcg 1.8 return dlen;
237     }
238    
239     #if 0
240     struct test { test (); } test;
241    
242     test::test ()
243     {
244     basecoder cdc ("0123456789abcdefghijklmnopqrstuvwxyz");
245    
246     u8 in[] = "0123456789abcdefghijklmnopqrstuvwxyz";
247     static char enc[200];
248     static u8 dec[200];
249    
250     for (int i = 1; i < 20; i++)
251     {
252     int elen = cdc.encode (enc, in, i);
253     int dlen = cdc.decode (dec, enc, elen);
254    
255     printf ("%d>%d>%d (%s>%s)\n", i, elen, dlen, enc, dec);
256     }
257     abort ();
258     }
259     #endif
260    
261 pcg 1.10 //static basecoder cdc64 ("_dDpPhHzZrR06QqMmjJkKBb34TtSsvVlL81xXaAeEFf92WwGgYyoO57UucCNniI-");
262 pcg 1.8 //static basecoder cdc63 ("_dDpPhHzZrR06QqMmjJkKBb34TtSsvVlL81xXaAeEFf92WwGgYyoO57UucCNniI");
263     static basecoder cdc62 ("dDpPhHzZrR06QqMmjJkKBb34TtSsvVlL81xXaAeEFf92WwGgYyoO57UucCNniI");
264     //static basecoder cdc36 ("dphzr06qmjkb34tsvl81xaef92wgyo57ucni"); // unused as of yet
265     static basecoder cdc26 ("dPhZrQmJkBtSvLxAeFwGyO");
266    
267     /////////////////////////////////////////////////////////////////////////////
268    
269     #define HDRSIZE 6
270 pcg 1.24
271 pcg 1.17 inline void encode_header (char *data, int clientid, int seqno, int retry = 0)
272 pcg 1.8 {
273 pcg 1.17 seqno &= SEQNO_MASK;
274    
275     u8 hdr[3] = {
276     clientid,
277     (seqno >> 8) | (retry << 6),
278     seqno,
279     };
280 pcg 1.8
281     assert (clientid < 256);
282    
283     cdc26.encode (data, hdr, 3);
284     }
285    
286     inline void decode_header (char *data, int &clientid, int &seqno)
287     {
288     u8 hdr[3];
289    
290     cdc26.decode (hdr, data, HDRSIZE);
291    
292     clientid = hdr[0];
293 pcg 1.17 seqno = ((hdr[1] << 8) | hdr[2]) & SEQNO_MASK;
294 pcg 1.4 }
295    
296     /////////////////////////////////////////////////////////////////////////////
297    
298     struct byte_stream
299     {
300     u8 *data;
301     int maxsize;
302     int fill;
303    
304     byte_stream (int maxsize);
305     ~byte_stream ();
306    
307     bool empty () { return !fill; }
308     int size () { return fill; }
309    
310 pcg 1.5 bool put (u8 *data, unsigned int datalen);
311 pcg 1.4 bool put (vpn_packet *pkt);
312     vpn_packet *get ();
313    
314     u8 *begin () { return data; }
315     void remove (int count);
316     };
317    
318     byte_stream::byte_stream (int maxsize)
319     : maxsize (maxsize), fill (0)
320     {
321     data = new u8 [maxsize];
322     }
323    
324     byte_stream::~byte_stream ()
325     {
326     delete data;
327     }
328    
329     void byte_stream::remove (int count)
330     {
331     if (count > fill)
332 pcg 1.17 assert (count <= fill);
333 pcg 1.4
334     memmove (data, data + count, fill -= count);
335     }
336    
337 pcg 1.5 bool byte_stream::put (u8 *data, unsigned int datalen)
338     {
339     if (maxsize - fill < datalen)
340     return false;
341    
342     memcpy (this->data + fill, data, datalen); fill += datalen;
343    
344     return true;
345     }
346    
347 pcg 1.4 bool byte_stream::put (vpn_packet *pkt)
348     {
349     if (maxsize - fill < pkt->len + 2)
350     return false;
351    
352     data [fill++] = pkt->len >> 8;
353     data [fill++] = pkt->len;
354    
355 pcg 1.10 memcpy (data + fill, pkt->at (0), pkt->len); fill += pkt->len;
356 pcg 1.4
357     return true;
358     }
359    
360     vpn_packet *byte_stream::get ()
361     {
362 pcg 1.18 unsigned int len;
363    
364     for (;;)
365     {
366     len = (data [0] << 8) | data [1];
367 pcg 1.4
368 pcg 1.18 if (len <= MAXSIZE || fill < 2)
369     break;
370 pcg 1.5
371 pcg 1.18 // TODO: handle this better than skipping, e.g. by reset
372     slog (L_DEBUG, _("DNS: corrupted packet stream skipping a byte..."));
373     remove (1);
374     }
375    
376 pcg 1.4 if (fill < len + 2)
377     return 0;
378    
379     vpn_packet *pkt = new vpn_packet;
380 pcg 1.5
381     pkt->len = len;
382 pcg 1.10 memcpy (pkt->at (0), data + 2, len);
383 pcg 1.4 remove (len + 2);
384    
385     return pkt;
386 pcg 1.2 }
387    
388 pcg 1.3 /////////////////////////////////////////////////////////////////////////////
389    
390 pcg 1.2 #define FLAG_QUERY ( 0 << 15)
391     #define FLAG_RESPONSE ( 1 << 15)
392 pcg 1.9 #define FLAG_OP_MASK (15 << 11)
393 pcg 1.2 #define FLAG_OP_QUERY ( 0 << 11)
394     #define FLAG_AA ( 1 << 10)
395     #define FLAG_TC ( 1 << 9)
396     #define FLAG_RD ( 1 << 8)
397     #define FLAG_RA ( 1 << 7)
398 pcg 1.5 #define FLAG_AUTH ( 1 << 5)
399 pcg 1.2 #define FLAG_RCODE_MASK (15 << 0)
400     #define FLAG_RCODE_OK ( 0 << 0)
401     #define FLAG_RCODE_FORMERR ( 1 << 0)
402     #define FLAG_RCODE_SERVFAIL ( 2 << 0)
403     #define FLAG_RCODE_NXDOMAIN ( 3 << 0)
404     #define FLAG_RCODE_REFUSED ( 5 << 0)
405    
406     #define DEFAULT_CLIENT_FLAGS (FLAG_QUERY | FLAG_OP_QUERY | FLAG_RD)
407 pcg 1.5 #define DEFAULT_SERVER_FLAGS (FLAG_RESPONSE | FLAG_OP_QUERY | FLAG_AA | FLAG_RD | FLAG_RA)
408 pcg 1.2
409 pcg 1.10 struct dns_cfg
410     {
411     static int next_uid;
412    
413     u8 id1, id2, id3, id4;
414 pcg 1.24
415 pcg 1.10 u8 version;
416 pcg 1.24 u8 flags;
417 pcg 1.10 u8 rrtype;
418     u8 def_ttl;
419 pcg 1.24
420 pcg 1.10 u16 client;
421     u16 uid; // to make request unique
422    
423 pcg 1.24 u16 max_size;
424     u8 seq_cdc;
425     u8 req_cdc;
426    
427     u8 rep_cdc;
428 pcg 1.30 u8 delay; // time in 0.01s units that the server may delay replying packets
429     u8 r3, r4;
430 pcg 1.24
431     u8 r5, r6, r7, r8;
432 pcg 1.10
433     void reset (int clientid);
434     bool valid ();
435     };
436    
437     int dns_cfg::next_uid;
438    
439     void dns_cfg::reset (int clientid)
440     {
441     id1 = 'G';
442     id2 = 'V';
443     id3 = 'P';
444     id4 = 'E';
445    
446     version = 1;
447    
448     rrtype = RR_TYPE_TXT;
449     flags = 0;
450 pcg 1.24 def_ttl = 0;
451     seq_cdc = 26;
452     req_cdc = 62;
453     rep_cdc = 0;
454 pcg 1.27 max_size = htons (MAX_PKT_SIZE);
455     client = htons (clientid);
456 pcg 1.10 uid = next_uid++;
457 pcg 1.30 delay = 0;
458 pcg 1.10
459 pcg 1.30 r3 = r4 = 0;
460 pcg 1.24 r4 = r5 = r6 = r7 = 0;
461 pcg 1.10 }
462    
463     bool dns_cfg::valid ()
464     {
465     return id1 == 'G'
466     && id2 == 'V'
467     && id3 == 'P'
468     && id4 == 'E'
469 pcg 1.24 && seq_cdc == 26
470     && req_cdc == 62
471     && rep_cdc == 0
472 pcg 1.27 && version == 1;
473 pcg 1.10 }
474    
475 pcg 1.2 struct dns_packet : net_packet
476     {
477     u16 id;
478     u16 flags; // QR:1 Opcode:4 AA:1 TC:1 RD:1 RA:1 Z:3 RCODE:4
479     u16 qdcount, ancount, nscount, arcount;
480    
481 pcg 1.24 u8 data [MAXSIZE - 6 * 2];
482 pcg 1.2
483     int decode_label (char *data, int size, int &offs);
484     };
485    
486     int dns_packet::decode_label (char *data, int size, int &offs)
487     {
488     char *orig = data;
489    
490     memset (data, 0, size);
491    
492     while (offs < size - 1)
493     {
494     u8 len = (*this)[offs++];
495    
496     if (!len)
497     break;
498     else if (len < 64)
499     {
500     if (size < len + 1 || offs + len >= MAXSIZE - 1)
501     break;
502    
503     memcpy (data, &((*this)[offs]), len);
504    
505     data += len; size -= len; offs += len;
506     *data++ = '.'; size--;
507     }
508     else
509     {
510     int offs2 = ((len & 63) << 8) + (*this)[offs++];
511    
512     data += decode_label (data, size, offs2);
513     break;
514     }
515     }
516    
517     return data - orig;
518     }
519    
520 pcg 1.3 /////////////////////////////////////////////////////////////////////////////
521    
522 pcg 1.18 static u16 dns_id = 0; // TODO: should be per-vpn
523    
524     static u16 next_id ()
525     {
526     if (!dns_id)
527     dns_id = time (0);
528    
529     // the simplest lsfr with periodicity 65535 i could find
530     dns_id = (dns_id << 1)
531     | (((dns_id >> 1)
532     ^ (dns_id >> 2)
533     ^ (dns_id >> 4)
534     ^ (dns_id >> 15)) & 1);
535    
536     return dns_id;
537     }
538    
539     struct dns_rcv;
540     struct dns_snd;
541    
542     struct dns_connection
543     {
544     connection *c;
545     struct vpn *vpn;
546    
547     dns_cfg cfg;
548    
549     bool established;
550    
551     tstamp last_received;
552     tstamp last_sent;
553 pcg 1.25 double min_latency;
554 pcg 1.18 double poll_interval, send_interval;
555    
556     vector<dns_rcv *> rcvpq;
557    
558     byte_stream rcvdq; int rcvseq;
559     byte_stream snddq; int sndseq;
560    
561     void time_cb (time_watcher &w); time_watcher tw;
562     void receive_rep (dns_rcv *r);
563    
564     dns_connection (connection *c);
565     ~dns_connection ();
566     };
567    
568 pcg 1.10 struct dns_snd
569 pcg 1.3 {
570     dns_packet *pkt;
571 pcg 1.10 tstamp timeout, sent;
572 pcg 1.3 int retry;
573 pcg 1.9 struct dns_connection *dns;
574 pcg 1.5 int seqno;
575 pcg 1.17 bool stdhdr;
576 pcg 1.3
577 pcg 1.9 void gen_stream_req (int seqno, byte_stream &stream);
578 pcg 1.18 void gen_syn_req ();
579 pcg 1.11
580     dns_snd (dns_connection *dns);
581     ~dns_snd ();
582 pcg 1.3 };
583    
584 pcg 1.10 dns_snd::dns_snd (dns_connection *dns)
585 pcg 1.9 : dns (dns)
586 pcg 1.3 {
587 pcg 1.10 timeout = 0;
588 pcg 1.3 retry = 0;
589 pcg 1.10 seqno = 0;
590 pcg 1.11 sent = NOW;
591 pcg 1.17 stdhdr = false;
592 pcg 1.3
593     pkt = new dns_packet;
594    
595 pcg 1.5 pkt->id = next_id ();
596     }
597    
598 pcg 1.11 dns_snd::~dns_snd ()
599     {
600     delete pkt;
601     }
602    
603 pcg 1.10 static void append_domain (dns_packet &pkt, int &offs, const char *domain)
604     {
605     // add tunnel domain
606     for (;;)
607     {
608     const char *end = strchr (domain, '.');
609    
610     if (!end)
611     end = domain + strlen (domain);
612    
613     int len = end - domain;
614    
615     pkt [offs++] = len;
616     memcpy (pkt.at (offs), domain, len);
617     offs += len;
618    
619     if (!*end)
620     break;
621    
622     domain = end + 1;
623     }
624     }
625    
626     void dns_snd::gen_stream_req (int seqno, byte_stream &stream)
627 pcg 1.5 {
628 pcg 1.17 stdhdr = true;
629 pcg 1.5 this->seqno = seqno;
630    
631 pcg 1.10 timeout = NOW + INITIAL_TIMEOUT;
632    
633 pcg 1.5 pkt->flags = htons (DEFAULT_CLIENT_FLAGS);
634 pcg 1.4 pkt->qdcount = htons (1);
635 pcg 1.3
636 pcg 1.4 int offs = 6*2;
637 pcg 1.19 int dlen = MAX_DOMAIN_SIZE - (strlen (dns->c->conf->domain) + 2);
638 pcg 1.5 // MAX_DOMAIN_SIZE is technically 255, but bind doesn't compress responses well,
639     // so we need to have space for 2*MAX_DOMAIN_SIZE + header + extra
640    
641 pcg 1.8 char enc[256], *encp = enc;
642     encode_header (enc, THISNODE->id, seqno);
643 pcg 1.4
644 pcg 1.8 int datalen = cdc62.decode_len (dlen - (dlen + MAX_LBL_SIZE - 1) / MAX_LBL_SIZE - HDRSIZE);
645 pcg 1.4
646 pcg 1.9 if (datalen > stream.size ())
647     datalen = stream.size ();
648 pcg 1.8
649 pcg 1.9 int enclen = cdc62.encode (enc + HDRSIZE, stream.begin (), datalen) + HDRSIZE;
650     stream.remove (datalen);
651 pcg 1.4
652 pcg 1.5 while (enclen)
653     {
654     int lbllen = enclen < MAX_LBL_SIZE ? enclen : MAX_LBL_SIZE;
655    
656     (*pkt)[offs++] = lbllen;
657     memcpy (pkt->at (offs), encp, lbllen);
658 pcg 1.4
659 pcg 1.5 offs += lbllen;
660     encp += lbllen;
661 pcg 1.4
662 pcg 1.5 enclen -= lbllen;
663 pcg 1.4 }
664    
665 pcg 1.19 append_domain (*pkt, offs, dns->c->conf->domain);
666 pcg 1.3
667 pcg 1.10 (*pkt)[offs++] = 0;
668     (*pkt)[offs++] = RR_TYPE_ANY >> 8; (*pkt)[offs++] = RR_TYPE_ANY;
669     (*pkt)[offs++] = RR_CLASS_IN >> 8; (*pkt)[offs++] = RR_CLASS_IN;
670    
671     pkt->len = offs;
672     }
673    
674 pcg 1.18 void dns_snd::gen_syn_req ()
675 pcg 1.10 {
676     timeout = NOW + INITIAL_SYN_TIMEOUT;
677 pcg 1.4
678 pcg 1.10 pkt->flags = htons (DEFAULT_CLIENT_FLAGS);
679     pkt->qdcount = htons (1);
680 pcg 1.4
681 pcg 1.18 int offs = 6 * 2;
682 pcg 1.4
683 pcg 1.18 int elen = cdc26.encode ((char *)pkt->at (offs + 1), (u8 *)&dns->cfg, sizeof (dns_cfg));
684 pcg 1.4
685 pcg 1.10 assert (elen <= MAX_LBL_SIZE);
686 pcg 1.4
687 pcg 1.10 (*pkt)[offs] = elen;
688     offs += elen + 1;
689 pcg 1.19 append_domain (*pkt, offs, dns->c->conf->domain);
690 pcg 1.4
691     (*pkt)[offs++] = 0;
692 pcg 1.10 (*pkt)[offs++] = RR_TYPE_A >> 8; (*pkt)[offs++] = RR_TYPE_A;
693 pcg 1.4 (*pkt)[offs++] = RR_CLASS_IN >> 8; (*pkt)[offs++] = RR_CLASS_IN;
694    
695     pkt->len = offs;
696 pcg 1.5 }
697    
698     struct dns_rcv
699     {
700     int seqno;
701     dns_packet *pkt; // reply packet
702     u8 data [MAXSIZE]; // actually part of the reply packet...
703     int datalen;
704    
705 pcg 1.6 dns_rcv (int seqno, u8 *data, int datalen);
706 pcg 1.5 ~dns_rcv ();
707     };
708    
709 pcg 1.6 dns_rcv::dns_rcv (int seqno, u8 *data, int datalen)
710 pcg 1.5 : seqno (seqno), pkt (new dns_packet), datalen (datalen)
711     {
712     memcpy (this->data, data, datalen);
713     }
714 pcg 1.4
715 pcg 1.5 dns_rcv::~dns_rcv ()
716     {
717     delete pkt;
718 pcg 1.3 }
719    
720     /////////////////////////////////////////////////////////////////////////////
721 pcg 1.9
722     dns_connection::dns_connection (connection *c)
723     : c (c)
724     , rcvdq (MAX_BACKLOG * 2)
725     , snddq (MAX_BACKLOG * 2)
726     , tw (this, &dns_connection::time_cb)
727     {
728     vpn = c->vpn;
729    
730 pcg 1.10 established = false;
731    
732 pcg 1.9 rcvseq = sndseq = 0;
733 pcg 1.10
734     last_sent = last_received = 0;
735 pcg 1.30 poll_interval = 0.5; // starting here
736 pcg 1.17 send_interval = 0.5; // starting rate
737 pcg 1.25 min_latency = INITIAL_TIMEOUT;
738 pcg 1.9 }
739    
740     dns_connection::~dns_connection ()
741     {
742     for (vector<dns_rcv *>::iterator i = rcvpq.begin ();
743     i != rcvpq.end ();
744     ++i)
745     delete *i;
746     }
747 pcg 1.3
748 pcg 1.10 void dns_connection::receive_rep (dns_rcv *r)
749 pcg 1.2 {
750 pcg 1.10 if (r->datalen)
751     {
752     last_received = NOW;
753     tw.trigger ();
754    
755 pcg 1.12 poll_interval = send_interval;
756 pcg 1.10 }
757     else
758     {
759 pcg 1.17 poll_interval *= 1.5;
760 pcg 1.25
761 pcg 1.10 if (poll_interval > MAX_POLL_INTERVAL)
762     poll_interval = MAX_POLL_INTERVAL;
763     }
764 pcg 1.2
765 pcg 1.9 rcvpq.push_back (r);
766 pcg 1.5
767     redo:
768    
769 pcg 1.8 // find next packet
770 pcg 1.9 for (vector<dns_rcv *>::iterator i = rcvpq.end (); i-- != rcvpq.begin (); )
771     if (SEQNO_EQ (rcvseq, (*i)->seqno))
772 pcg 1.5 {
773 pcg 1.8 // enter the packet into our input stream
774     r = *i;
775    
776     // remove the oldest packet, look forward, as it's oldest first
777 pcg 1.9 for (vector<dns_rcv *>::iterator j = rcvpq.begin (); j != rcvpq.end (); ++j)
778     if (SEQNO_EQ ((*j)->seqno, rcvseq - MAX_WINDOW))
779 pcg 1.8 {
780     delete *j;
781 pcg 1.9 rcvpq.erase (j);
782 pcg 1.8 break;
783     }
784 pcg 1.5
785 pcg 1.9 rcvseq = (rcvseq + 1) & SEQNO_MASK;
786 pcg 1.5
787 pcg 1.9 if (!rcvdq.put (r->data, r->datalen))
788 pcg 1.17 {
789     slog (L_ERR, "DNS: !rcvdq.put (r->data, r->datalen)");
790     abort (); // MUST never overflow, can be caused by data corruption, TODO
791     }
792 pcg 1.5
793 pcg 1.9 while (vpn_packet *pkt = rcvdq.get ())
794 pcg 1.5 {
795     sockinfo si;
796 pcg 1.18 si.host = 0x01010101; si.port = htons (c->conf->id); si.prot = PROT_DNSv4;
797 pcg 1.5
798     vpn->recv_vpn_packet (pkt, si);
799 pcg 1.11
800     delete pkt;
801 pcg 1.5 }
802 pcg 1.8
803     // check for further packets
804 pcg 1.5 goto redo;
805     }
806     }
807    
808 pcg 1.10 void
809     vpn::dnsv4_server (dns_packet &pkt)
810 pcg 1.2 {
811 pcg 1.10 u16 flags = ntohs (pkt.flags);
812 pcg 1.2
813 pcg 1.4 int offs = 6 * 2; // skip header
814 pcg 1.2
815 pcg 1.10 pkt.flags = htons (DEFAULT_SERVER_FLAGS | FLAG_RCODE_FORMERR);
816 pcg 1.2
817 pcg 1.10 if (0 == (flags & (FLAG_RESPONSE | FLAG_OP_MASK))
818     && pkt.qdcount == htons (1))
819 pcg 1.4 {
820 pcg 1.24 char qname [MAXSIZE];
821 pcg 1.10 int qlen = pkt.decode_label ((char *)qname, MAXSIZE - offs, offs);
822 pcg 1.4
823 pcg 1.10 u16 qtype = pkt [offs++] << 8; qtype |= pkt [offs++];
824     u16 qclass = pkt [offs++] << 8; qclass |= pkt [offs++];
825 pcg 1.2
826 pcg 1.10 pkt.qdcount = htons (1);
827     pkt.ancount = 0;
828     pkt.nscount = 0; // should be self, as other nameservers reply like this
829     pkt.arcount = 0; // a record for self, as other nameservers reply like this
830 pcg 1.2
831 pcg 1.16 pkt.flags = htons (DEFAULT_SERVER_FLAGS | FLAG_RCODE_SERVFAIL);
832 pcg 1.2
833 pcg 1.4 int dlen = strlen (THISNODE->domain);
834 pcg 1.2
835 pcg 1.4 if (qclass == RR_CLASS_IN
836 pcg 1.10 && qlen > dlen + 1
837 pcg 1.24 && !memcmp (qname + qlen - (dlen + 1), THISNODE->domain, dlen))
838 pcg 1.2 {
839 pcg 1.10 // now generate reply
840     pkt.ancount = htons (1); // one answer RR
841     pkt.flags = htons (DEFAULT_SERVER_FLAGS | FLAG_RCODE_OK);
842    
843     if ((qtype == RR_TYPE_ANY
844     || qtype == RR_TYPE_TXT
845     || qtype == RR_TYPE_NULL)
846     && qlen > dlen + 1 + HDRSIZE)
847 pcg 1.5 {
848 pcg 1.10 // correct class, domain: parse
849     int client, seqno;
850     decode_header (qname, client, seqno);
851 pcg 1.5
852 pcg 1.10 u8 data[MAXSIZE];
853     int datalen = cdc62.decode (data, qname + HDRSIZE, qlen - (dlen + 1 + HDRSIZE));
854 pcg 1.9
855 pcg 1.10 if (0 < client && client <= conns.size ())
856     {
857     connection *c = conns [client - 1];
858     dns_connection *dns = c->dns;
859     dns_rcv *rcv;
860 pcg 1.17 bool in_seq;
861 pcg 1.10
862     if (dns)
863     {
864     for (vector<dns_rcv *>::iterator i = dns->rcvpq.end (); i-- != dns->rcvpq.begin (); )
865     if (SEQNO_EQ ((*i)->seqno, seqno))
866     {
867     // already seen that request: simply reply with the cached reply
868     dns_rcv *r = *i;
869    
870 pcg 1.17 slog (L_DEBUG, "DNS: duplicate packet received ID %d, SEQ %d", htons (r->pkt->id), seqno);
871    
872     // refresh header & id, as the retry count could have changed
873     memcpy (r->pkt->at (6 * 2 + 1), pkt.at (6 * 2 + 1), HDRSIZE);
874     r->pkt->id = pkt.id;
875 pcg 1.10
876     memcpy (pkt.at (0), r->pkt->at (0), offs = r->pkt->len);
877 pcg 1.17
878 pcg 1.10 goto duplicate_request;
879     }
880    
881 pcg 1.17 in_seq = dns->rcvseq == seqno;
882    
883 pcg 1.10 // new packet, queue
884     rcv = new dns_rcv (seqno, data, datalen);
885     dns->receive_rep (rcv);
886     }
887    
888 pcg 1.21 {
889     pkt [offs++] = 0xc0; pkt [offs++] = 6 * 2; // refer to name in query section
890    
891     int rtype = dns ? dns->cfg.rrtype : RR_TYPE_A;
892     pkt [offs++] = rtype >> 8; pkt [offs++] = rtype; // type
893     pkt [offs++] = RR_CLASS_IN >> 8; pkt [offs++] = RR_CLASS_IN; // class
894     pkt [offs++] = 0; pkt [offs++] = 0;
895     pkt [offs++] = 0; pkt [offs++] = dns ? dns->cfg.def_ttl : 0; // TTL
896    
897     int rdlen_offs = offs += 2;
898 pcg 1.10
899 pcg 1.21 if (dns)
900     {
901 pcg 1.27 int dlen = ntohs (dns->cfg.max_size) - offs;
902    
903     // bind doesn't compress well, so reduce further by one label length
904     dlen -= qlen;
905    
906 pcg 1.21 // only put data into in-order sequence packets, if
907     // we receive out-of-order packets we generate empty
908     // replies
909     while (dlen > 1 && !dns->snddq.empty () && in_seq)
910     {
911     int txtlen = dlen <= 255 ? dlen - 1 : 255;
912 pcg 1.10
913 pcg 1.21 if (txtlen > dns->snddq.size ())
914     txtlen = dns->snddq.size ();
915 pcg 1.10
916 pcg 1.21 pkt[offs++] = txtlen;
917     memcpy (pkt.at (offs), dns->snddq.begin (), txtlen);
918     offs += txtlen;
919     dns->snddq.remove (txtlen);
920 pcg 1.10
921 pcg 1.21 dlen -= txtlen + 1;
922     }
923    
924     // avoid empty TXT rdata
925     if (offs == rdlen_offs)
926     pkt[offs++] = 0;
927 pcg 1.15
928 pcg 1.21 slog (L_NOISE, "DNS: snddq %d", dns->snddq.size ());
929     }
930     else
931     {
932     // send RST
933     pkt [offs++] = CMD_IP_1; pkt [offs++] = CMD_IP_2; pkt [offs++] = CMD_IP_3;
934     pkt [offs++] = CMD_IP_RST;
935     }
936 pcg 1.10
937 pcg 1.21 int rdlen = offs - rdlen_offs;
938 pcg 1.10
939 pcg 1.21 pkt [rdlen_offs - 2] = rdlen >> 8;
940     pkt [rdlen_offs - 1] = rdlen;
941 pcg 1.10
942 pcg 1.21 if (dns)
943     {
944     // now update dns_rcv copy
945     rcv->pkt->len = offs;
946     memcpy (rcv->pkt->at (0), pkt.at (0), offs);
947     }
948     }
949 pcg 1.9
950 pcg 1.10 duplicate_request: ;
951     }
952     else
953     pkt.flags = htons (DEFAULT_SERVER_FLAGS | FLAG_RCODE_FORMERR);
954     }
955     else if (qtype == RR_TYPE_A
956     && qlen > dlen + 1 + cdc26.encode_len (sizeof (dns_cfg)))
957     {
958     dns_cfg cfg;
959     cdc26.decode ((u8 *)&cfg, qname, cdc26.encode_len (sizeof (dns_cfg)));
960     int client = ntohs (cfg.client);
961 pcg 1.4
962 pcg 1.10 pkt [offs++] = 0xc0; pkt [offs++] = 6 * 2; // refer to name in query section
963 pcg 1.2
964 pcg 1.10 pkt [offs++] = RR_TYPE_A >> 8; pkt [offs++] = RR_TYPE_A; // type
965     pkt [offs++] = RR_CLASS_IN >> 8; pkt [offs++] = RR_CLASS_IN; // class
966     pkt [offs++] = 0; pkt [offs++] = 0;
967     pkt [offs++] = 0; pkt [offs++] = cfg.def_ttl; // TTL
968     pkt [offs++] = 0; pkt [offs++] = 4; // rdlength
969 pcg 1.2
970 pcg 1.24 slog (L_INFO, _("DNS: client %d connects"), client);
971 pcg 1.2
972 pcg 1.10 pkt [offs++] = CMD_IP_1; pkt [offs++] = CMD_IP_2; pkt [offs++] = CMD_IP_3;
973     pkt [offs++] = CMD_IP_REJ;
974 pcg 1.2
975 pcg 1.10 if (0 < client && client <= conns.size ())
976 pcg 1.5 {
977 pcg 1.10 connection *c = conns [client - 1];
978 pcg 1.2
979 pcg 1.10 if (cfg.valid ())
980     {
981     pkt [offs - 1] = CMD_IP_SYN;
982    
983     delete c->dns;
984     c->dns = new dns_connection (c);
985     c->dns->cfg = cfg;
986     }
987 pcg 1.5 }
988     }
989 pcg 1.2 }
990 pcg 1.6
991 pcg 1.10 pkt.len = offs;
992 pcg 1.4 }
993     }
994    
995     void
996 pcg 1.10 vpn::dnsv4_client (dns_packet &pkt)
997 pcg 1.4 {
998 pcg 1.10 u16 flags = ntohs (pkt.flags);
999 pcg 1.4 int offs = 6 * 2; // skip header
1000    
1001 pcg 1.10 pkt.qdcount = ntohs (pkt.qdcount);
1002     pkt.ancount = ntohs (pkt.ancount);
1003 pcg 1.4
1004 pcg 1.5 // go through our request list and find the corresponding request
1005 pcg 1.10 for (vector<dns_snd *>::iterator i = dns_sndpq.begin ();
1006 pcg 1.4 i != dns_sndpq.end ();
1007     ++i)
1008 pcg 1.10 if ((*i)->pkt->id == pkt.id)
1009 pcg 1.4 {
1010 pcg 1.9 dns_connection *dns = (*i)->dns;
1011 pcg 1.12 connection *c = dns->c;
1012 pcg 1.5 int seqno = (*i)->seqno;
1013     u8 data[MAXSIZE], *datap = data;
1014    
1015 pcg 1.10 if ((*i)->retry)
1016     {
1017 pcg 1.17 dns->send_interval *= 1.01;
1018 pcg 1.12 if (dns->send_interval > MAX_SEND_INTERVAL)
1019 pcg 1.10 dns->send_interval = MAX_SEND_INTERVAL;
1020     }
1021     else
1022     {
1023 pcg 1.26 #if 0
1024 pcg 1.17 dns->send_interval *= 0.999;
1025 pcg 1.12 #endif
1026 pcg 1.10 // the latency surely puts an upper bound on
1027     // the minimum send interval
1028 pcg 1.12 double latency = NOW - (*i)->sent;
1029    
1030 pcg 1.25 if (latency < dns->min_latency)
1031     dns->min_latency = latency;
1032    
1033     if (dns->send_interval > dns->min_latency * LATENCY_FACTOR)
1034     dns->send_interval = dns->min_latency * LATENCY_FACTOR;
1035 pcg 1.27
1036     if (dns->send_interval < MIN_SEND_INTERVAL)
1037     dns->send_interval = MIN_SEND_INTERVAL;
1038 pcg 1.10 }
1039    
1040 pcg 1.4 delete *i;
1041     dns_sndpq.erase (i);
1042    
1043 pcg 1.10 if (flags & FLAG_RESPONSE && !(flags & FLAG_OP_MASK))
1044 pcg 1.4 {
1045     char qname[MAXSIZE];
1046    
1047 pcg 1.10 while (pkt.qdcount-- && offs < MAXSIZE - 4)
1048 pcg 1.4 {
1049 pcg 1.10 int qlen = pkt.decode_label ((char *)qname, MAXSIZE - offs, offs);
1050 pcg 1.4 offs += 4; // skip qtype, qclass
1051     }
1052    
1053 pcg 1.10 while (pkt.ancount-- && offs < MAXSIZE - 10 && datap)
1054 pcg 1.4 {
1055 pcg 1.10 int qlen = pkt.decode_label ((char *)qname, MAXSIZE - offs, offs);
1056    
1057     u16 qtype = pkt [offs++] << 8; qtype |= pkt [offs++];
1058     u16 qclass = pkt [offs++] << 8; qclass |= pkt [offs++];
1059     u32 ttl = pkt [offs++] << 24;
1060     ttl |= pkt [offs++] << 16;
1061     ttl |= pkt [offs++] << 8;
1062     ttl |= pkt [offs++];
1063     u16 rdlen = pkt [offs++] << 8; rdlen |= pkt [offs++];
1064 pcg 1.8
1065 pcg 1.10 if (qtype == RR_TYPE_NULL || qtype == RR_TYPE_TXT)
1066     {
1067     if (rdlen <= MAXSIZE - offs)
1068     {
1069     // decode bytes, finally
1070    
1071     while (rdlen)
1072     {
1073     int txtlen = pkt [offs++];
1074 pcg 1.4
1075 pcg 1.10 assert (txtlen + offs < MAXSIZE - 1);
1076 pcg 1.4
1077 pcg 1.10 memcpy (datap, pkt.at (offs), txtlen);
1078     datap += txtlen; offs += txtlen;
1079    
1080     rdlen -= txtlen + 1;
1081     }
1082     }
1083     }
1084     else if (qtype == RR_TYPE_A)
1085 pcg 1.5 {
1086 pcg 1.10 u8 ip [4];
1087 pcg 1.5
1088 pcg 1.10 ip [0] = pkt [offs++];
1089     ip [1] = pkt [offs++];
1090     ip [2] = pkt [offs++];
1091     ip [3] = pkt [offs++];
1092    
1093     if (ip [0] == CMD_IP_1
1094     && ip [1] == CMD_IP_2
1095     && ip [2] == CMD_IP_3)
1096 pcg 1.5 {
1097 pcg 1.17 slog (L_TRACE, _("DNS: got tunnel meta command %02x"), ip [3]);
1098 pcg 1.5
1099 pcg 1.10 if (ip [3] == CMD_IP_RST)
1100     {
1101 pcg 1.17 slog (L_DEBUG, _("DNS: got tunnel RST request"));
1102 pcg 1.10
1103 pcg 1.12 delete dns; c->dns = 0;
1104 pcg 1.10
1105     return;
1106     }
1107     else if (ip [3] == CMD_IP_SYN)
1108 pcg 1.12 {
1109 pcg 1.17 slog (L_DEBUG, _("DNS: got tunnel SYN reply, server likes us."));
1110 pcg 1.12 dns->established = true;
1111     }
1112     else if (ip [3] == CMD_IP_REJ)
1113     {
1114 pcg 1.17 slog (L_DEBUG, _("DNS: got tunnel REJ reply, server does not like us, aborting."));
1115 pcg 1.12 abort ();
1116     }
1117 pcg 1.10 else
1118 pcg 1.17 slog (L_INFO, _("DNS: got unknown meta command %02x"), ip [3]);
1119 pcg 1.10 }
1120     else
1121 pcg 1.17 slog (L_INFO, _("DNS: got spurious a record %d.%d.%d.%d"),
1122 pcg 1.10 ip [0], ip [1], ip [2], ip [3]);
1123 pcg 1.5
1124 pcg 1.10 return;
1125 pcg 1.9 }
1126 pcg 1.4
1127 pcg 1.9 int client, rseqno;
1128     decode_header (qname, client, rseqno);
1129    
1130     if (client != THISNODE->id)
1131     {
1132 pcg 1.17 slog (L_INFO, _("DNS: got dns tunnel response with wrong clientid, ignoring"));
1133 pcg 1.9 datap = 0;
1134     }
1135     else if (rseqno != seqno)
1136     {
1137 pcg 1.17 slog (L_DEBUG, _("DNS: got dns tunnel response with wrong seqno, badly caching nameserver?"));
1138 pcg 1.9 datap = 0;
1139 pcg 1.4 }
1140     }
1141     }
1142    
1143 pcg 1.6 // todo: pkt now used
1144 pcg 1.9 if (datap)
1145     dns->receive_rep (new dns_rcv (seqno, data, datap - data));
1146 pcg 1.5
1147 pcg 1.4 break;
1148     }
1149     }
1150    
1151     void
1152     vpn::dnsv4_ev (io_watcher &w, short revents)
1153     {
1154     if (revents & EVENT_READ)
1155     {
1156     dns_packet *pkt = new dns_packet;
1157     struct sockaddr_in sa;
1158     socklen_t sa_len = sizeof (sa);
1159    
1160 pcg 1.10 pkt->len = recvfrom (w.fd, pkt->at (0), MAXSIZE, 0, (sockaddr *)&sa, &sa_len);
1161 pcg 1.4
1162     if (pkt->len > 0)
1163 pcg 1.5 {
1164 pcg 1.24 if (ntohs (pkt->flags) & FLAG_RESPONSE)
1165     dnsv4_client (*pkt);
1166     else
1167 pcg 1.5 {
1168 pcg 1.10 dnsv4_server (*pkt);
1169     sendto (w.fd, pkt->at (0), pkt->len, 0, (sockaddr *)&sa, sa_len);
1170 pcg 1.5 }
1171 pcg 1.10
1172     delete pkt;
1173 pcg 1.5 }
1174 pcg 1.1 }
1175     }
1176    
1177     bool
1178 pcg 1.18 vpn::send_dnsv4_packet (vpn_packet *pkt, const sockinfo &si, int tos)
1179 pcg 1.3 {
1180 pcg 1.18 int client = ntohs (si.port);
1181    
1182     assert (0 < client && client <= conns.size ());
1183    
1184     connection *c = conns [client - 1];
1185    
1186     if (!c->dns)
1187     c->dns = new dns_connection (c);
1188 pcg 1.4
1189 pcg 1.18 if (!c->dns->snddq.put (pkt))
1190 pcg 1.3 return false;
1191    
1192 pcg 1.18 c->dns->tw.trigger ();
1193 pcg 1.3
1194     return true;
1195     }
1196    
1197 pcg 1.12 void
1198     connection::dnsv4_reset_connection ()
1199     {
1200     //delete dns; dns = 0; //TODO
1201     }
1202    
1203 pcg 1.10 #define NEXT(w) do { if (next > (w)) next = w; } while (0)
1204    
1205 pcg 1.3 void
1206 pcg 1.9 dns_connection::time_cb (time_watcher &w)
1207 pcg 1.1 {
1208 pcg 1.10 // servers have to be polled
1209     if (THISNODE->dns_port)
1210     return;
1211    
1212 pcg 1.3 // check for timeouts and (re)transmit
1213 pcg 1.10 tstamp next = NOW + poll_interval;
1214     dns_snd *send = 0;
1215 pcg 1.3
1216 pcg 1.10 for (vector<dns_snd *>::iterator i = vpn->dns_sndpq.begin ();
1217 pcg 1.4 i != vpn->dns_sndpq.end ();
1218 pcg 1.3 ++i)
1219     {
1220 pcg 1.10 dns_snd *r = *i;
1221 pcg 1.3
1222 pcg 1.10 if (r->timeout <= NOW)
1223 pcg 1.3 {
1224 pcg 1.4 if (!send)
1225     {
1226     send = r;
1227    
1228     r->retry++;
1229 pcg 1.25 r->timeout = NOW + (r->retry * min_latency * 8.);
1230 pcg 1.17
1231     // the following code changes the query section a bit, forcing
1232     // the forwarder to generate a new request
1233     if (r->stdhdr)
1234     {
1235 pcg 1.27 //printf ("reencoded header for ID %d retry %d:%d:%d (%p)\n", htons (r->pkt->id), THISNODE->id, r->seqno, r->retry);
1236 pcg 1.17 //encode_header ((char *)r->pkt->at (6 * 2 + 1), THISNODE->id, r->seqno, r->retry);
1237     }
1238 pcg 1.4 }
1239 pcg 1.3 }
1240 pcg 1.11 else
1241 pcg 1.10 NEXT (r->timeout);
1242 pcg 1.3 }
1243    
1244 pcg 1.28 if (!send)
1245 pcg 1.5 {
1246 pcg 1.29 // generate a new packet, if wise
1247    
1248     if (!established)
1249 pcg 1.10 {
1250 pcg 1.29 if (vpn->dns_sndpq.empty ())
1251 pcg 1.10 {
1252 pcg 1.29 send = new dns_snd (this);
1253 pcg 1.10
1254 pcg 1.29 cfg.reset (THISNODE->id);
1255     send->gen_syn_req ();
1256 pcg 1.10 }
1257 pcg 1.29 }
1258     else if (vpn->dns_sndpq.size () < MAX_OUTSTANDING
1259     && !SEQNO_EQ (rcvseq, sndseq - (MAX_WINDOW - 1)))
1260     {
1261     if (last_sent + send_interval <= NOW)
1262 pcg 1.10 {
1263 pcg 1.18 //printf ("sending data request etc.\n"); //D
1264 pcg 1.25 if (!snddq.empty () || last_received + 1. > NOW)
1265 pcg 1.17 {
1266     poll_interval = send_interval;
1267     NEXT (NOW + send_interval);
1268     }
1269    
1270 pcg 1.10 send = new dns_snd (this);
1271     send->gen_stream_req (sndseq, snddq);
1272 pcg 1.25 send->timeout = NOW + min_latency * 8.;
1273 pcg 1.5
1274 pcg 1.10 sndseq = (sndseq + 1) & SEQNO_MASK;
1275     }
1276 pcg 1.29 else
1277     NEXT (last_sent + send_interval);
1278     }
1279 pcg 1.4
1280 pcg 1.29 if (send)
1281     vpn->dns_sndpq.push_back (send);
1282 pcg 1.28 }
1283 pcg 1.4
1284 pcg 1.28 if (send)
1285     {
1286     last_sent = NOW;
1287     sendto (vpn->dnsv4_fd,
1288     send->pkt->at (0), send->pkt->len, 0,
1289     vpn->dns_forwarder.sav4 (), vpn->dns_forwarder.salenv4 ());
1290 pcg 1.4 }
1291 pcg 1.10
1292 pcg 1.27 slog (L_NOISE, "DNS: pi %f si %f N %f (%d:%d %d)",
1293 pcg 1.12 poll_interval, send_interval, next - NOW,
1294 pcg 1.27 vpn->dns_sndpq.size (), snddq.size (),
1295     rcvpq.size ());
1296 pcg 1.11
1297     // TODO: no idea when this happens, but when next < NOW, we have a problem
1298 pcg 1.29 if (next < NOW + 0.001)
1299 pcg 1.11 next = NOW + 0.1;
1300 pcg 1.4
1301 pcg 1.3 w.start (next);
1302 pcg 1.1 }
1303    
1304     #endif
1305